The intensive management of grasslands is bad for biodiversity. However, a study by the Terrestrial Ecology Research Group at the Technical University of Munich (TUM) has brought a ray of hope: If different forms of management are optimally distributed within a region, this can lead to higher yields without the loss of insect species. In ideal cases, this will allow even more species to find habitats that are optimal for them. What is crucial here is that management is planned at the landscape level.

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A research group from the Institute of Process Engineering (IPE) of the Chinese Academy of Sciences recently reported the development of a new technology to boost performance of direct methanol fuel cells (DMFCs) using high-concentration methanol as fuel, shedding some light on the design of clean and affordable alternative energy sources for portable electric devices. 

When methanol, the fuel of DMFCs, crosses over from the anode to the cathode through the proton exchange membrane (PEM), fuel cell performance is significantly degraded, creating a major problem for the commercialization of DMFCs. Commonly, scientists use various strategies to improve DMFC performance at high concentrations of methanol. These include improving the fuel-feed system, membrane development, modification of electrodes, and water management. 

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The Swedish-based carmaker, Volvo, will build only electric or hybrid-electric cars beginning in 2019, making it the first big auto company to abandon conventional gasoline-powered engines. 

The legendary auto manufacturer, now a wholly owned subsidiary of a Chinese company, had earlier set a goal of selling one million electric cars and hyrids by 2025. “This is how we are going to do it,” President and CEO Hakan Samuelsson said in a statement. 

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Ecologists and conservationists have long recognized that keystone species have major ecological importance disproportionate to their abundance or size. Think beavers, sea stars and prairie dogs — species that keep a ecosystem balanced.

Similarly across landscapes, the keystone concept of disproportionate importance extends to other ecological elements, such as salt marshes in estuaries.

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As Canada’s vast boreal and tundra ecosystems experience dramatic warming due to climate change, trees are rapidly spreading north. New research from UBC’s Okanagan Campus suggests some of these trees could be getting help from a surprising source: fungi that have lain dormant underground for thousands of years.

“The idea that long-dormant, symbiotic fungi could help trees migrate during periods of rapid climate change has been around for decades, but no one had taken it seriously enough to investigate,” says the study’s co-author Jason Pither, associate professor of biology at UBC Okanagan. “Could fungi actually remain dormant and viable for thousands of years and be resurrected by plants growing today? Our research suggests it’s possible.”

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